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Real-Time Cache-Aided Route Planning Based on Mobile Edge Computing

机译:基于移动边缘计算的实时缓存辅助路线规划

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摘要

Route planning is considered as one of the fundamental technologies in the navigation system, which finds an optimal route between a pair of source and target locations. Navigation services are required to provide real-time responses to route planning queries to promote user experiences on the road under different situations, such as sudden detour, unpredictable traffic congestion and loss of GPS signals. However, most commercial navigation products search the optimal path at the remote central server which suffer from several inherent limitations. First, the communication between the access network and the remote central server has a large uncertain Internet-induced time delay. Second, the computational cost of retrieving an optimal path is increasing exponentially with the distance from the source location to the destination in a large-scale road network. To address the above issues, we propose a real-time Cache-Aided Route Planning System based on Mobile Edge Computing (CARPS-MEC), aiming to greatly shorten the communication and computation time of route planning queries by caching those frequently requested paths. Different from traditional cache based route planning algorithms which require an exact path matching from point to point, CARPSMEC makes a rough path matching from region to region. Thus, it only needs to process unmatched road segments on a MEC server which is closer to the end users. This will significantly reduce the transmission latency due to the uncertainty of the Internet. Experiment results demonstrate that CARPS-MEC can increase the cache hit ratio and reduce the response time greatly.
机译:路线规划被认为是导航系统中的基本技术之一,它在一对源和目标位置之间找到了最佳路由。导航服务需要提供用于路由规划查询的实时响应,以在不同情况下促进道路上的用户体验,例如突然的绕行,不可预测的交通拥堵和GPS信号丢失。但是,大多数商业导航产品在远程中央服务器的最佳路径中搜索遭受多个固有限制的最佳路径。首先,接入网络和远程中央服务器之间的通信具有大不确定的因特网诱导的时间延迟。其次,检索最佳路径的计算成本正在以大规模公路网络中的距离到目的地的距离呈指数级增长。为了解决上述问题,我们提出了一个基于移动边缘计算(Carps-MEC)的实时缓存辅助路线规划系统,其目的是通过缓存那些经常要求的路径来大大缩短路线规划查询的通信和计算时间。不同于传统的基于高速缓存的路线规划算法,该算法需要从点对点匹配的精确路径,carpsmec将从区域与区域匹配的粗略路径。因此,它只需要在靠近最终用户的MEC服务器上处理无与伦比的道路段。由于互联网的不确定性,这将显着降低传输延迟。实验结果表明,鲤鱼 - MEC可以增加高速缓存命中率并大大减少响应时间。

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